BACKGROUND OF THE INVENTION
[0001] The present invention relates to the field of power systems. In particular, the present
invention relates to an elevator power system including a regenerative drive operable
to provide automatic rescue operation and to charge the backup power source associated
with the automatic rescue operation.
[0002] An elevator drive system is typically designed to operate over a specific input voltage
range from a power source. The components of the drive have voltage and current ratings
that allow the drive to continuously operate while the power supply remains within
the designed input voltage range. However, in certain markets the utility network
is less reliable, and utility voltage sags, brownout conditions (i.e., voltage conditions
below the tolerance band of the drive) and/or power loss conditions are prevalent.
When utility voltage sags occur, the drive draws more current from the power supply
to maintain uniform power to the hoist motor. In conventional systems, when excess
current is being drawn from the power supply, the drive will shut down to avoid damaging
the components of the drive.
[0003] When a power sag or power loss occurs, the elevator may become stalled between floors
in the elevator hoistway until the power supply returns to the nominal operating voltage
range. In conventional systems, passengers in the elevator may be trapped until a
maintenance worker is able to release a brake for controlling cab movement upwardly
or downwardly to allow the elevator to move to the closest floor. More recently, elevator
systems employing automatic rescue operation have been introduced. These elevator
systems include electrical energy storage devices that are controlled after power
failure to provide power to move the elevator to the next floor for passenger disembarkation.
However, many current automatic rescue operation systems are complex and expensive
to implement, and may provide unreliable power to the elevator drive after a power
failure. In addition, current systems require a dedicated charger for the backup power
source associated with the automatic rescue operation procedure.
[0004] An example of such a system can be found in
US6315081 B1 which describes an apparatus for use in elevator failure, in which a back up power
supply is charged by a charger and used when a predetermined control signal is received,
wherein the need of the elevator is controlled in order to limit power use.
BRIEF SUMMARY OF THE INVENTION
[0005] According to the present invention there is provided a system for continuously driving
an elevator hoist motor during normal and power failure operating conditions as claimed
in claim 1. The subject invention is directed to a system for continuously driving
an elevator hoist motor during normal and power failure operating conditions. A regenerative
drive delivers power to the hoist motor from a main power supply during the normal
operating condition and from a backup power supply during the power failure operating
condition. A controller operates the regenerative drive to provide available power
on the regenerative drive to the backup power supply during the normal operating condition.
BRIEF DESCRIPTION OF THE DRAWINGS
[0006]
FIG. 1 is a schematic view of a power system including a controller and a regenerative
drive for continuously driving an elevator hoist during normal and power failure operating
conditions.
FIG. 2 is a schematic view of an automatic rescue operation circuit for switching
from a main power supply to a backup power supply in the event of a power failure.
FIG. 3 is a schematic view of the automatic rescue operation circuit configured to
provide power available on the regenerative drive to recharge the backup power supply.
DETAILED DESCRIPTION
[0007] FIG. 1 is a schematic view of a power system 10 including a controller 12 for driving
hoist motor 14 of elevator 16 from main power supply 17 according to an embodiment
of the present invention. Elevator 16 includes elevator cab 18 and counterweight 20
that are connected through roping 22 to hoist motor 14. Main power supply 17 may be
electricity supplied from an electrical utility, such as from a commercial power source.
[0008] As will be described herein, power system 10 is configured to provide substantially
uninterrupted power during normal and power failure conditions to drive hoist motor
14 and other elevator systems. In certain markets the utility network is less reliable,
where persistent utility voltage sags, brownout conditions, and/or power loss conditions
are prevalent. Power system 10 according to the present invention includes automatic
rescue operation (ARO) circuit 24 to allow for continuous operation of hoist motor
14 at normal operating conditions during these periods of irregularity by switching
from the failing main power supply to a backup power supply. In addition, power system
10 is operable to provide available power to recharge the backup power supply during
normal and power saving operating conditions. While the following description is directed
to driving an elevator hoist motor, it will be appreciated that ARO circuit 24 may
be employed to provide continuous power to any type of load.
[0009] Power system 10 includes controller 12, automatic rescue operation (ARO) circuit
24, electromagnetic interference (EMI) filter 26, line reactors 28, power converter
30, smoothing capacitor 32, power inverter 34, and motor current sensor 35. Power
converter 30 and power inverter 34 are connected by power bus 36. Smoothing capacitor
32 is connected across power bus 36. Controller 12 includes ARO control 40, phase
locked loop 42, converter control 44, DC bus voltage regulator 46, inverter control
48, power supply voltage sensor 50, elevator motion profile control 52, and position,
speed, and current control 54. In one embodiment, controller 12 is a digital signal
processor (DSP), and each of the components of controller 12 are functional blocks
that are implemented in software executed by controller 12.
[0010] ARO control 40 is connected between main power supply 17 and EMI filter 26, and provides
control signals ARO circuit 24 as its output. Line reactors 28 are connected between
EMI filter 26 and power converter 30. Phase locked loop 42 receives the three-phase
signal from main power supply 17 as an input, and provides an output to converter
control 44, DC bus voltage regulator 46, and power supply voltage sensor 50. Converter
control 44 also receives an input from DC bus voltage regulator and provides an output
to power converter 30. Power supply voltage sensor 50 provides an output to elevator
motion profile control 52, which in turn provides an output to position, speed, and
current control 54. DC bus voltage regulator 46 receives signals from phase locked
loop 42 and position, speed, and current control 54, and monitors the voltage across
power bus 36. Inverter control 48 also receives a signal from position, speed, and
current control 54 and provides a control output to power inverter 34.
[0011] Main power supply 17, which may be a three-phase AC power supply from the commercial
power source, provides electrical power to power converter 30 during normal operating
conditions (e.g., within 10% of normal operating voltage of main power supply 17).
As will be described with regard to FIG. 2, during power failure conditions, ARO circuit
24 is controlled to switch to from main power supply 17 to a backup power supply.
Power converter 30 is a three-phase power converter that is operable to convert three-phase
AC power from main power supply 17 to DC power. In one embodiment, power converter
30 comprises a plurality of power transistor circuits including parallel-connected
transistors 56 and diodes 58. Each transistor 56 may be, for example, an insulated
gate bipolar transistor (IGBT). The controlled electrode (i.e., gate or base) of each
transistor 56 is connected to converter control 44. Converter control 44 controls
the power transistor circuits to rectify the three-phase AC power from main power
supply 17 to DC output power. The DC output power is provided by power converter 30
on power bus 36. Smoothing capacitor 32 smoothes the rectified power provided by power
converter 30 on power bus 36. It should be noted that while main power supply 17 is
shown as a three-phase AC power supply, power system 10 may be adapted to receive
power from any type of power source, including a single phase AC power source and
a DC power source.
[0012] The power transistor circuits of power converter 30 also allow power on power bus
36 to be inverted and provided to main power supply 17. In one embodiment, controller
12 employs pulse width modulation (PWM) to produce gating pulses so as to periodically
switch the transistors 56 of power converter 30 to provide a three-phase AC power
signal to main power supply 17. This regenerative configuration reduces the demand
on main power supply 17. EMI filter 26 is connected between main power supply 17 and
power converter 30 to suppress voltage transients, and line reactors 28 are connected
between main power supply 17 and power converter 30 to control the current passing
between main power supply 17 and power converter 30. In another embodiment, power
converter 30 comprises a three-phase diode bridge rectifier.
[0013] Power inverter 34 is a three-phase power inverter that is operable to invert DC power
from power bus 36 to three-phase AC power. Power inverter 34 comprises a plurality
of power transistor circuits including parallel-connected transistors 60 and diodes
62. Each transistor 60 may be, for example, an insulated gate bipolar transistor (IGBT).
In one embodiment, the controlled electrode (i.e., gate or base) of each transistor
60 is controlled by inverter control 48 to invert the DC power on power bus 36 to
three-phase AC output power. The three-phase AC power at the outputs of power inverter
34 is provided to hoist motor 14. In one embodiment, inverter control 48 employs PWM
to produce gating pulses to periodically switch transistors 60 of power inverter 34
to provide a three-phase AC power signal to hoist motor 14. Inverter control 48 may
vary the speed and direction of movement of elevator 16 by adjusting the frequency
and magnitude of the gating pulses to transistors 60.
[0014] In addition, the power transistor circuits of power inverter 34 are operable to rectify
power that is generated when elevator 16 drives hoist motor 14. For example, if hoist
motor 14 is generating power, inverter control 34 deactivates transistors 60 in power
inverter 34 to allow the generated power to be rectified by diodes 62 and provided
to power bus 36. Smoothing capacitor 32 smoothes the rectified power provided by power
inverter 34 on power bus 36.
[0015] Hoist motor 14 controls the speed and direction of movement between elevator cab
18 and counterweight 20. The power required to drive hoist motor 14 varies with the
acceleration and direction of elevator 16, as well as the load in elevator cab 18.
For example, if elevator 16 is being accelerated, run up with a load greater than
the weight of counterweight 20 (i.e., heavy load), or run down with a load less than
the weight of counterweight 20 (i.e., light load), a maximal amount of power is required
to drive hoist motor 14. If elevator 16 is leveling or running at a fixed speed with
a balanced load, it may be using a lesser amount of power. If elevator 16 is being
decelerated, running down with a heavy load, or running up with a light load, elevator
16 drives hoist motor 14. In this case, hoist motor 14 generates three-phase AC power
that is converted to DC power by power inverter 34 under the control of inverter control
30. The converted DC power is accumulated on power bus 36.
[0016] Elevator motion profile control 52 generates a signal that is used to control the
motion of elevator 16. In particular, automatic elevator operation involves the control
of the velocity of elevator 16 during an elevator trip. The time change in velocity
for a complete trip is termed the "motion profile" of elevator 16. Thus, elevator
motion profile control 52 generates an elevator motion profile that sets the maximum
acceleration, the maximum steady state speed, and the maximum deceleration of elevator
16. The particular motion profile and motion parameters generated by elevator motion
profile control 52 represent a compromise between the desire for "maximum" speed and
the need to maintain acceptable levels of comfort for the passengers.
[0017] The motion profile output of elevator motion profile control 52 is provided to position,
speed, and current control 54. These signals are compared with actual feedback values
of the motor position (pos
m), motor speed (v
m), and motor current (i
m) by position, speed, and current control 54 to determine an error signal related
to the difference between the actual operating parameters of hoist motor 14 and the
target operating parameters. For example, position, speed, and current control 54
may include proportional and integral amplifiers to provide determine this error signal
from the actual and desired adjusted motion parameters. The error signal is provided
by position, speed, and current control 54 to inverter control 48 and DC bus voltage
regulator 46.
[0018] Based on the error signal from position, speed, and current control 54, inverter
control 48 calculates signals to be provided to power inverter 34 to drive hoist motor
14 pursuant to the motion profile when hoist motor 14 is motoring. As described above,
inverter control 48 may employ PWM to produce gating pulses to periodically switch
transistors 60 of power inverter 34 to provide a three-phase AC power signal to hoist
motor 14. Inverter control 48 may vary the speed and direction of movement of elevator
16 by adjusting the frequency and magnitude of the gating pulses to transistors 60.
[0019] It should be noted that while a single hoist motor 14 is shown connected to power
system 10, power system 10 may be modified to power multiple hoist motors 14. For
example, a plurality of power inverters 34 may be connected in parallel across power
bus 36 to provide power to a plurality of hoist motors 14. As another example, a plurality
of drive systems (including line reactors 28, power converter 30, smoothing capacitor
32, power inverter 34, and power bus 36) may be connected in parallel such that each
drive system provides power to a hoist motor 12.
[0020] FIG. 2 is a schematic view of the front end of power system 10 shown in FIG. 1 that
is operable to provide continuous operation of hoist motor 14 during normal and power
failure operating conditions of main power supply 17. The front end of power system
10 includes main power supply 16, ARO circuit 24, EMI filter 26 (the capacitor portion
of EMI filter 26 is shown), line reactors 28, power converter 30, smoothing capacitor
32, power bus 36, and converter control 44.
[0021] ARO circuit 24 includes backup power supply switch 70, main power switch module 72
including main power switches 74a, 74b, and 74c, battery 76, and voltage sensor 78.
Main power relay switch 74a is connected between input R of main power supply 16 and
leg R of power converter 30, main power relay switch 74b is connected between input
S of main power supply 16 and leg S of power converter 30, and main power relay switch
74a is connected between input T of main power supply 16 and leg T of power converter
30. Backup power switch 70 is connected between the positive pole of battery 76 and
leg R of power converter 30. The negative pole of battery 76 is connected to the common
node of power converter 30 and power bus 36. Voltage sensor 78 is connected across
battery 76 to measure the voltage of battery 76 and provide signals related to this
measurement to ARO control 40 (FIG. 1). It should also be noted that while a single
battery 76 is shown, ARO circuit 24 may include any type or configuration of backup
power supply, including a plurality of batteries connected in series or supercapacitors.
[0022] During normal operating conditions, controller 12 provides signals on ARO control
line CTRL to close main power switches 74a, 74b, and 74c and open backup power switch
70 to provide power from main power supply 16 to each of the three phases R, S, and
T on power converter 30. If the voltage of main power supply 16 as measured by power
supply voltage sensor 50 (FIG. 1) drops below the normal operating range of power
system 10, controller 12 provides a signal to ARO circuit 24 via line CTRL that simultaneously
opens main power switches 74a-74c and closes backup power switch 70. This configuration,
shown in FIG. 2, connects the positive pole of battery 76 to leg R of power converter
30, and converter control 44 operates the transistors associated with leg R to provide
power from battery 76 to power bus 36. Leg R of power converter 30 acts as a bi-directional
boost converter to provide stepped-up DC power from battery 76 to power bus 36. The
configuration shown is capable of providing DC power from battery 76 on power bus
36 that is as much as 1.5 to two times the voltage of battery 76. Controller 12 operates
power inverter 34 based on a motion profile specific for power failure conditions
(i.e., at lower speeds) to conserve available power from battery 76. In this way,
power system 10 can operate substantially uninterrupted to provide rescue operation
to deliver passengers on elevator 16 to the next closest floor after power failure.
[0023] Power system 10 may also provide power to other electrical systems, such as auxiliary
systems (e.g., machine fans, lighting and outlets of elevator car 18, safety chains,
and the system transformer) during power failure by operating legs S and T of power
converter 30 to invert DC power on power bus 36 to AC power. The AC power is provided
to the auxiliary systems via the AUX connection. Converter control 44 may apply PWM
signals to the transistors associated with legs S and T to invert the DC power on
power bus 36. In one embodiment, the PWM signals are bipolar sinusoidal voltage commands.
The inverted voltage on the AUX connection is filtered for current and voltage transients
by line reactors 28 and EMI filter 26. A fault management device, such as a current
regulator, may also be implemented between the S leg and the AUX connection to prevent
shorts or overloading at the AUX connection.
[0024] FIG. 3 is a schematic view of the ARO circuit 24 configured to provide power available
on power bus 36 to recharge battery 76. During periods of low use of elevator 16,
power system 10 may be placed in power save mode by opening all three switches of
main power switch module 72 and opening backup power switch 70 to cut power to elevator
16. At this time, voltage sensor 78 of ARO circuit 24 may measure the state of charge
of battery 76. A signal is then sent to ARO control 40 related to the measured voltage
of battery 76.
[0025] If the voltage across battery 76 is determined to be below a threshold voltage (as
set in software), ARO control 40 operates ARO circuit 24 to provide power from main
power supply 16 to recharge battery 76. In particular, phases S and T of main power
supply 16 are connected to legs S and T of power converter 30 by closing main power
switches 74b and 74c. Main power switch 74a remains open and backup power switch 70
is closed to connect battery 76 to leg R of power converter 30. Converter control
44 operates the transistors associated with legs S and T to convert the AC power from
main power supply 16 to DC power. The converted DC power is provided on power bus
36. Converter control 44 operates the transistors associated with leg R of power converter
30 to provide a constant current from power bus 36 to battery 76 for recharging. In
summary, the subject invention is directed to a system for continuously driving an
elevator hoist motor during normal and power failure operating conditions. A regenerative
drive delivers power to the hoist motor from a main power supply during the normal
operating condition and from a backup power supply during the power failure operating
condition. A controller operates the regenerative drive to provide available power
on the regenerative drive to the backup power supply during the normal operating condition.
In addition, the controller may provide signals to the regenerative drive to invert
power from the backup power supply to drive auxiliary elevator systems during the
power failure condition. Automatic rescue operation, powering of auxiliary systems,
and charging of the backup power supply associated with automatic rescue operation
are thus all achieved by controlling the regenerative drive to manipulate available
power from the main and backup power supplies.
1. A system (10) for continuously driving an elevator hoist motor (14) during normal
and power failure operating conditions, the system comprising:
a regenerative drive operable to deliver power to the hoist motor (14) from a main
power supply (17) during the normal operating condition and from a backup power supply
(76) during the power failure operating condition; and
a controller (12) for operating the regenerative drive to provide available power
on the regenerative drive to the backup power supply (76) during the normal operating
condition;
characterised in that the regenerative drive comprises:
a power bus (36); and
a converter (30) to convert alternating current (AC) power from the main power supply
(17) into direct current (DC) power, and to act as a boost converter to provide stepped-up
DC power from the backup power supply (76) to the power bus (36).
2. The system (10) of claim 1, wherein the regenerative drive further comprises:
an inverter (32) to drive the hoist motor (14) by converting the DC power from the
converter (30) into AC power and, when the hoist motor (14) is generating, to convert
AC power produced by the hoist motor (14) to DC power;
wherein the power bus (36) is connected between the converter (30) and the inverter
(32) to receive DC power from the converter (30) and the inverter (32).
3. The system (10) of claim 1 or 2, wherein the controller (12) provides signals to the
converter (30) to deliver power on the power bus (36) to the backup power supply (76).
4. The system (10) of any preceding claim, wherein the converter (30) is a three-phase
converter that is controlled such that power from the main power supply (17) is converted
and delivered to the power bus (36) on two phases and power on the power bus (36)
is delivered to charge the backup power supply on the third phase and/or such that
power from the backup power supply is converted and delivered to the power bus (36)
on one phase and power on the power bus (36) is delivered to drive auxiliary power
systems on the other two phases.
5. The system (10) of any preceding claim, wherein the controller (12) provides signals
to the converter (30) to invert DC power from the backup power supply to AC power
for driving auxiliary elevator systems during the power failure condition.
6. The system (10) of claim 5, wherein the converter (30) comprises a plurality of power
transistor circuits, each power transistor circuit comprising a transistor and a diode
connected in parallel, and wherein the controller (30) employs pulse width modulation
to produce gating pulses to periodically switch the transistors to invert DC power
from the backup power supply to AC power.
7. The system (10) of any preceding claim, wherein the regenerative drive is controlled
to provide available power on the regenerative drive to the backup power supply if
the backup power supply voltage is below a threshold voltage, and/or
wherein the main power supply (17) is connected to the regenerative drive to provide
power to the backup power supply, and/or
wherein the backup power supply comprises at least one battery (76), and/or
wherein the controller (30) disconnects the main power supply (17) and the backup
power supply from the regenerative drive during a power save condition.
8. A system (10) for continuously driving an elevator hoist motor (14), the system comprising:
a system as claimed in claim 1, and further comprising:
an inverter (32) operable to drive the hoist motor (14) by converting the DC power
from the converter (30) into AC power and, when the hoist motor (14) is generating,
to convert AC power produced by the hoist motor (14) to DC power,
wherein the power bus (36) is connected between the converter (30) and the inverter
(32) to receive DC power from the converter (30) and the inverter (32); and
a rescue operation circuit (24) including a backup power supply connected between
the main power supply (17) and the converter (30), wherein the rescue operation circuit
(24) is operable to disconnect the main power supply (17) from the converter (30)
and connect the backup power supply (17) to the converter (30) in the event of a failure
of the main power supply (17), and wherein the rescue operation circuit (24) is further
operable to connect the backup power supply to the main power supply (17) through
the converter (30) to charge the backup power supply.
9. The system (10) of claim 8, wherein the converter (30) is a three-phase converter
that is controlled such that power from the main power supply (17) is converted and
delivered to the power bus (36) on two phases and power on the power bus (36) is delivered
to charge the backup power supply on the third phase and/or such that power from the
backup power supply is converted and delivered to the power bus (36) on one phase
and power on the power bus (36) is delivered to drive auxiliary power systems on the
other two phases.
10. The system of claim 8 or 9, wherein the converter (30) is further operable to invert
DC power from the power bus (36) to AC power for driving auxiliary elevator systems.
11. The system of claim 8, 9 or 10, wherein the backup power supply is charged if the
backup power supply voltage is below a threshold voltage, and/or
wherein the backup power supply comprises at least one battery (76), and/or
wherein the rescue operation circuit (24) disconnects the main power supply (17) and
the backup power supply from the converter (30) in power save mode.
12. A method for providing substantially uninterrupted power to an elevator hoist motor
(14) during normal and power failure conditions, the method comprising:
connecting a main power supply (17) to a converter (30) and a power bus (36) in a
regenerative drive that drives the elevator hoist motor (14) if the main power supply
voltage is within a normal operating range;
disconnecting the main power supply (17) from the converter (30) in the regenerative
drive and connecting a backup power supply (76) to the regenerative drive if the main
power supply voltage is below the normal operating range; and
charging the backup power supply (76) from the main power supply (17) by connecting
the main power supply (17) and the backup power
supply through the converter (30) in the regenerative drive if the backup power supply
voltage is below a threshold voltage;
characterised in that the converter (30) converts alternating current (AC) power from the main power supply
(17) into direct current (DC) power and acts as a boost converter to provide stepped-up
DC power from the backup power supply to the power bus (36).
13. The method of claim 12, wherein connecting the main power supply (17) comprises closing
main power switches (74a, 74b, 74c) connected between the main power supply (17) and
the regenerative drive, and opening a backup power switch (70) connected between the
backup power supply (76) and the regenerative drive.
14. The method of claim 12 or 13, wherein the disconnecting step comprises opening the
main power switches (74a, 74b, 74c) and closing the backup power switch (70), and/or
wherein the charging step comprises: converting alternating current (AC) power from
the main power supply (17) to direct current (DC) power; and
providing the DC power to the backup power supply.
15. The method of claim 12, 13 or 14, further comprising:
disconnecting the main power supply (17) and the backup power supply (76) from the
regenerative drive in power save mode.
16. The method of any of claims 12-15, further comprising:
providing an inverter (32) to drive the hoist motor (14) by converting the DC power
from the converter (30) into AC power and, when the hoist motor (14) is generating,
to convert AC power produced by the hoist motor (14) to DC power; and
connecting the power bus (36) between the converter (30) and the inverter (32) to
receive DC power from the converter (30) and the inverter (32).
1. System (10) zum kontinuierlichen Antreiben eines Aufzughubmotors (14) während normaler
und Stromausfallbetriebsbedingungen, wobei das System Folgendes umfasst:
einen regenerativen Antrieb, der bedienbar ist, um während der normalen Betriebsbedingung
von einer Hauptstromversorgung (17) und während der Stromausfallbetriebsbedingung
von einer Notstromversorgung (76) Strom an den Hubmotor (14) abzugeben; und
eine Steuerung (12) zum Betreiben des regenerativen Antriebs, sodass er während der
normalen Betriebsbedingung der Notstromversorgung (76) an dem regenerativen Antrieb
verfügbaren Strom bereitstellt;
dadurch gekennzeichnet, dass der regenerative Antrieb Folgendes umfasst:
eine Stromleiste (36); und einen Wandler (30), um Wechselstrom (AC) von der Hauptstromversorgung
(17) in Gleichstrom (DC) umzuwandeln, und
um als Aufwärtswandler zu dienen, um hochgestuften Gleichstrom von der Notstromversorgung
(76) an die Stromleiste (36) abzugeben.
2. System (10) nach Anspruch 1, wobei der regenerative Antrieb ferner Folgendes umfasst:
einen Wechselrichter (32), um den Hubmotor (14) anzutreiben, indem der Gleichstrom
von dem Wandler (30) in Wechselstrom umgewandelt wird, und, wenn der Hubmotor (14)
generiert, durch den Hubmotor (14) erzeugten Wechselstrom in Gleichstrom umzuwandeln;
wobei die Stromleiste (36) zwischen dem Wandler (30) und dem Wechselrichter (32) verbunden
ist, um Gleichstrom von dem Wandler (30) und dem Wechselrichter (32) zu empfangen.
3. System (10) nach Anspruch 1 oder 2, wobei die Steuerung (12) Signale an den Wandler
(30) bereitstellt, um Strom an der Stromleiste (36) an die Notstromversorgung (76)
abzugeben.
4. System (10) nach einem vorhergehenden Anspruch, wobei der Wandler (30) ein Dreiphasenwandler
ist, der derart gesteuert wird, dass Strom an zwei Phasen von der Hauptstromversorgung
(17) umgewandelt und an die Stromleiste (36) abgegeben wird und Strom an der Stromleiste
(36) abgegeben wird, um die Notstromversorgung an der dritten Phase zu laden und/oder
derart, dass Strom von der Notstromversorgung an einer Phase umgewandelt und an die
Stromleiste (36) abgegeben wird und Strom an der Stromleiste (36) abgegeben wird,
um Hilfsstromsysteme an den anderen zwei Phasen anzutreiben.
5. System (10) nach einem vorhergehenden Anspruch, wobei die Steuerung (12) Signale an
den Wandler (30) bereitstellt, um Gleichstrom von der Notstromversorgung in Wechselstrom
umzukehren, um Hilfsaufzugsysteme während der Stromausfallbedingung anzutreiben.
6. System (10) nach Anspruch 5, wobei der Wandler (30) eine Vielzahl von Stromtransistorschaltungen
umfasst, wobei jede Stromtransistorschaltung einen Transistor und eine Diode umfasst,
die parallel verbunden sind, und wobei die Steuerung (30) Impulsbreitenmodulation
einsetzt, um Ansteuerimpulse zu erzeugen, um die Transistoren periodisch zu schalten,
um Gleichstrom von der Notstromversorgung in Wechselstrom umzukehren.
7. System (10) nach einem vorhergehenden Anspruch, wobei der regenerative Antrieb gesteuert
wird, um der Notstromversorgung verfügbaren Strom an dem regenerativen Antrieb bereitzustellen,
wenn die Notstromversorgungsspannung unter einer Schwellenspannung liegt, und/oder
wobei die Hauptstromversorgung (17) mit dem regenerativen Antrieb verbunden ist, um
der Notstromversorgung Strom bereitzustellen, und/oder
wobei die Notstromversorgung zumindest eine Batterie (76) umfasst, und/oder
wobei die Steuerung (30) die Hauptstromversorgung (17) und die Notstromversorgung
während einer Stromsparbedingung von dem regenerativen Antrieb trennt.
8. System (10) zum kontinuierlichen Antreiben eines Aufzughubmotors (14), wobei das System
Folgendes umfasst:
ein System nach Anspruch 1, und ferner umfassend:
einen Wechselrichter (32), der bedienbar ist, um den Hubmotor (14) anzutreiben, indem
der Gleichstrom von dem Wandler (30) in Wechselstrom umgewandelt wird, und, wenn der
Hubmotor (14) generiert, durch den Hubmotor (14) erzeugten Wechselstrom in Gleichstrom
umzuwandeln,
wobei die Stromleiste (36) zwischen dem Wandler (30) und dem Wechselrichter (32) verbunden
ist, um Gleichstrom von dem Wandler (30) und dem Wechselrichter (32) zu empfangen;
und
eine Rettungsbetriebsschaltung (24), beinhaltend eine Notstromversorgung, die zwischen
der Hauptstromversorgung (17) und dem Wandler (30) verbunden ist, wobei die Rettungsbetriebsschaltung
(24) bedienbar ist, um in dem Fall eines Ausfalls der Hauptstromversorgung (17) die
Hauptstromversorgung (17) von dem Wandler (30) zu trennen und die Notstromversorgung
(17) mit dem Wandler (30) zu verbinden, und wobei die Rettungsbetriebsschaltung (24)
ferner bedienbar ist, um die Notstromversorgung durch den Wandler (30) mit der Hauptstromversorgung
(17) zu verbinden, um die Notstromversorgung zu laden.
9. System (10) nach Anspruch 8, wobei der Wandler (30) ein Dreiphasenwandler ist, der
derart gesteuert wird, dass Strom an zwei Phasen von der Hauptstromversorgung (17)
umgewandelt und an die Stromleiste (36) abgegeben wird und Strom an der Stromleiste
(36) abgegeben wird, um die Notstromversorgung an der dritten Phase zu laden und/oder
derart, dass Strom von der Notstromversorgung an einer Phase umgewandelt und an die
Stromleiste (36) abgegeben wird und Strom an der Stromleiste (36) abgegeben wird,
um Hilfsstromsysteme an den anderen zwei Phasen anzutreiben.
10. System nach Anspruch 8 oder 9, wobei der Wandler (30) ferner bedienbar ist, um Gleichstrom
von der Stromleiste (36) in Wechselstrom umzukehren, um Hilfsaufzugsysteme anzutreiben.
11. System nach Anspruch 8, 9 oder 10, wobei die Notstromversorgung geladen wird, wenn
die Notstromversorgungsspannung unter einer Schwellenspannung liegt, und/oder
wobei die Notstromversorgung zumindest eine Batterie (76) umfasst, und/oder
wobei die Rettungsbetriebsschaltung (24) die Hauptstromversorgung (17) und die Notstromversorgung
im Stromsparmodus von dem Wandler (30) trennt.
12. Verfahren zur Bereitstellung von im Wesentlichen ununterbrochenem Strom an einen Aufzughubmotor
(14) während normaler und Stromausfallbedingungen, wobei das Verfahren Folgendes umfasst:
Verbinden einer Hauptstromversorgung (17) mit einem Wandler (30) und einer Stromleiste
(36) in einem regenerativen Antrieb, der den Aufzughubmotor (14) antreibt, wenn die
Hauptstromversorgungsspannung innerhalb einer normalen Betriebsspanne liegt;
Trennen der Hauptstromversorgung (17) von dem Wandler (30) in dem regenerativen Antrieb
und Verbinden einer Notstromversorgung (76) mit dem regenerativen Antrieb, wenn die
Hauptstromversorgungsspannung unter der normalen Betriebsspanne liegt; und
Laden der Notstromversorgung (76) von der Hauptstromversorgung (17) durch Verbinden
der Hauptstromversorgung (17) und der Notstromversorgung durch den Wandler (30) in
dem regenerativen Antrieb, wenn die Notstromversorgungsspannung unter einer Schwellenspannung
liegt;
dadurch gekennzeichnet, dass der Wandler (30) Wechselstrom (AC) von der Hauptstromversorgung (17) in Gleichstrom
(DC) umwandelt und als Aufwärtswandler dient, um hochgestuften Gleichstrom von der
Notstromversorgung an die Stromleiste (36) bereitzustellen.
13. Verfahren nach Anspruch 12, wobei das Verbinden der Hauptstromversorgung (17) das
Schließen von Hauptstromschaltern (74a, 74b, 74c), die zwischen der Hauptstromversorgung
(17) und dem regenerativen Antrieb verbunden sind, und das Öffnen eines Notstromschalters
(70), der zwischen der Notstromversorgung (76) und dem regenerativen Antrieb verbunden
ist, umfasst.
14. Verfahren nach Anspruch 12 oder 13, wobei der Trennungsschritt das Öffnen der Hauptstromschalter
(74a, 74b, 74c) und Schließen des Notstromschalters (70) umfasst, und/oder
wobei der Ladeschritt Folgendes umfasst: Umwandeln von Wechselstrom (AC) von der Hauptstromversorgung
(17) in Gleichstrom (DC); und
Bereitstellen des Gleichstroms an die Notstromversorgung.
15. Verfahren nach Anspruch 12, 13 oder 14, ferner umfassend:
Trennen der Hauptstromversorgung (17) und der Notstromversorgung (76) von dem regenerativen
Antrieb im Stromsparmodus.
16. Verfahren nach einem der Ansprüche 12-15, ferner umfassend:
Bereitstellen eines Wechselrichters (32), um den Hubmotor (14) anzutreiben, indem
der Gleichstrom von dem Wandler (30) in Wechselstrom umgewandelt wird und, wenn der
Hubmotor (14) generiert, durch den Hubmotor (14) erzeugten Wechselstrom in Gleichstrom
umzuwandeln; und
Verbinden der Stromleiste (36) zwischen dem Wandler (30) und dem Wechselrichter (32),
um Gleichstrom von dem Wandler (30) und dem Wechselrichter (32) zu empfangen.
1. Système (10) permettant d'entraîner de façon continue un moteur de dispositif de levage
d'ascenseur (14) pendant des conditions de fonctionnement normales et avec panne d'alimentation,
le système comprenant :
un entraînement régénérateur servant à délivrer une alimentation au moteur de dispositif
de levage (14) depuis une source d'alimentation principale (17) pendant les conditions
de fonctionnement normales et depuis une source d'alimentation de secours (76) pendant
les conditions de fonctionnement avec panne d'alimentation ; et
un dispositif de commande (12) permettant de faire fonctionner l'entraînement régénérateur
pour fournir l'alimentation disponible sur l'entraînement régénérateur à la source
d'alimentation de secours (76) pendant les conditions de fonctionnement normales ;
caractérisé en ce que l'entraînement régénérateur comprend :
un bus de puissance (36) ; et
un convertisseur (30) pour convertir l'alimentation en courant alternatif (c.a.) provenant
de la source d'alimentation principale (17) en alimentation en courant continu (c.c.),
et pour faire office de convertisseur élévateur pour fournir une alimentation c.c.
accrue provenant de la source d'alimentation de secours (76) au bus de puissance (36).
2. Système (10) selon la revendication 1, dans lequel l'entraînement régénérateur comprend
en outre :
un onduleur (32) pour entraîner le moteur de dispositif de levage (14) en convertissant
l'alimentation c.c. provenant du convertisseur (30) en alimentation c.a. et, lorsque
le moteur de dispositif de levage (14) a une génération en cours, pour convertir l'alimentation
c.a. produite par le moteur de dispositif de levage (14) en alimentation c.c. ;
dans lequel le bus de puissance (36) est connecté entre le convertisseur (30) et l'onduleur
(32) pour recevoir l'alimentation c.c. provenant du convertisseur (30) et de l'onduleur
(32) .
3. Système (10) selon la revendication 1 ou 2, dans lequel le dispositif de commande
(12) fournit des signaux au convertisseur (30) pour délivrer l'alimentation sur le
bus de puissance (36) à la source d'alimentation de secours (76).
4. Système (10) selon une quelconque revendication précédente, dans lequel le convertisseur
(30) est un convertisseur triphasé qui est commandé de sorte que l'alimentation provenant
de la source d'alimentation principale (17) soit convertie et délivrée au bus de puissance
(36) sur deux phases et l'alimentation sur le bus de puissance (36) soit délivrée
pour charger la source d'alimentation de secours sur la troisième phase et/ou de sorte
que l'alimentation provenant de la source d'alimentation de secours soit convertie
et délivrée au bus de puissance (36) sur une phase et l'alimentation sur le bus de
puissance (36) soit délivrée pour entraîner des systèmes d'alimentation auxiliaires
sur les deux autres phases.
5. Système (10) selon une quelconque revendication précédente, dans lequel le dispositif
de commande (12) fournit des signaux au convertisseur (30) pour inverser l'alimentation
c.c. provenant de la source d'alimentation de secours en alimentation c.a. permettant
d'entraîner des systèmes d'ascenseur auxiliaires pendant les conditions de panne d'alimentation.
6. Système (10) selon la revendication 5, dans lequel le convertisseur (30) comprend
une pluralité de circuits à transistor de puissance, chaque circuit à transistor de
puissance comprenant un transistor et une diode connectés en parallèle, et dans lequel
le dispositif de commande (30) emploie la modulation d'impulsions en largeur pour
produire des impulsions de déclenchement pour commuter périodiquement les transistors
pour inverser l'alimentation c.c. provenant de la source d'alimentation de secours
en alimentation c.a.
7. Système (10) selon une quelconque revendication précédente, dans lequel l'entraînement
régénérateur est commandé pour fournir l'alimentation disponible sur l'entraînement
régénérateur à la source d'alimentation de secours si la tension de source d'alimentation
de secours est en dessous d'une tension de seuil, et/ou
dans lequel la source d'alimentation principale (17) est connectée à l'entraînement
régénérateur pour fournir une alimentation à la source d'alimentation de secours,
et/ou
dans lequel la source d'alimentation de secours comprend au moins une batterie (76),
et/ou
dans lequel le dispositif de commande (30) déconnecte la source d'alimentation principale
(17) et la source d'alimentation de secours de l'entraînement régénérateur pendant
des conditions d'économie d'alimentation.
8. Système (10) permettant d'entraîner de manière continue un moteur de dispositif de
levage d'ascenseur (14), le système comprenant :
un système selon la revendication 1, et comprenant en outre :
un onduleur (32) servant à entraîner le moteur de dispositif de levage (14) en convertissant
l'alimentation c.c. provenant du convertisseur (30) en alimentation c.a. et, lorsque
le moteur de dispositif de levage (14) a une génération en cours, à convertir l'alimentation
c.a. produite par le moteur de dispositif de levage (14) en alimentation c.c., dans
lequel le bus de puissance (36) est connecté entre le convertisseur (30) et l'onduleur
(32) pour recevoir l'alimentation c.c. provenant du convertisseur (30) et de l'onduleur
(32) ; et
un circuit d'opération de sauvetage (24) incluant une source d'alimentation de secours
connectée entre la source d'alimentation principale (17) et le convertisseur (30),
dans lequel le circuit d'opération de sauvetage (24) sert à déconnecter la source
d'alimentation principale (17) du convertisseur (30) et connecter la source d'alimentation
de secours (17) au convertisseur (30) en cas de panne de la source d'alimentation
principale (17), et dans lequel le circuit d'opération de sauvetage (24) sert en outre
à connecter la source d'alimentation de secours à la source d'alimentation principale
(17) par le biais du convertisseur (30) pour charger la source d'alimentation de secours.
9. Système (10) selon la revendication 8, dans lequel le convertisseur (30) est un convertisseur
triphasé qui est commandé de sorte que l'alimentation provenant de la source d'alimentation
principale (17) soit convertie et délivrée au bus de puissance (36) sur deux phases
et l'alimentation sur le bus de puissance (36) soit délivrée pour charger la source
d'alimentation de secours sur la troisième phase et/ou de sorte que l'alimentation
provenant de la source d'alimentation de secours soit convertie et délivrée au bus
de puissance (36) sur une phase et l'alimentation sur le bus de puissance (36) soit
délivrée pour entraîner des systèmes d'alimentation auxiliaires sur les deux autres
phases.
10. Système selon la revendication 8 ou 9, dans lequel le convertisseur (30) sert en outre
à inverser l'alimentation c.c. provenant du bus de puissance (36) en alimentation
c.a. permettant d'entraîner des systèmes d'ascenseur auxiliaires.
11. Système selon la revendication 8, 9 ou 10, dans lequel la source d'alimentation de
secours est chargée si la tension de source d'alimentation de secours est en dessous
d'une tension de seuil, et/ou
dans lequel la source d'alimentation de secours comprend au moins une batterie (76),
et/ou
dans lequel le circuit d'opération de sauvetage (24) déconnecte la source d'alimentation
principale (17) et la source d'alimentation de secours du convertisseur (30) en mode
d'économie d'alimentation.
12. Procédé permettant de fournir une alimentation sensiblement ininterrompue à un moteur
de dispositif de levage d'ascenseur (14) pendant des conditions normales et de panne
d'alimentation, le procédé comprenant :
la connexion d'une source d'alimentation principale (17) à un convertisseur (30) et
un bus de puissance (36) dans un entraînement régénérateur qui entraîne le moteur
de dispositif de levage d'ascenseur (14) si la tension de source d'alimentation principale
est dans une plage de fonctionnement normal ;
la déconnexion de la source d'alimentation principale (17) du convertisseur (30) dans
l'entraînement régénérateur et la connexion d'une source d'alimentation de secours
(76) à l'entraînement régénérateur si la tension de source d'alimentation principale
est en dessous de la plage de fonctionnement normal ; et
la charge de la source d'alimentation de secours (76) à partir de la source d'alimentation
principale (17) en connectant la source d'alimentation principale (17) et la source
d'alimentation de secours par le biais du convertisseur (30) dans l'entraînement régénérateur
si la tension de source d'alimentation de secours est en dessous d'une tension de
seuil ;
caractérisé en ce que le convertisseur (30) convertit l'alimentation en courant alternatif (c.a.) provenant
de la source d'alimentation principale (17) en alimentation en courant continu (c.c.)
et fait office de convertisseur élévateur pour fournir une alimentation c.c. accrue
provenant de la source d'alimentation de secours au bus de puissance (36) .
13. Procédé selon la revendication 12, dans lequel la connexion de la source d'alimentation
principale (17) comprend la fermeture de commutateurs d'alimentation principale (74a,
74b, 74c) connectés entre la source d'alimentation principale (17) et l'entraînement
régénérateur, et l'ouverture d'un commutateur d'alimentation de secours (70) connecté
entre la source d'alimentation de secours (76) et l'entraînement régénérateur.
14. Procédé selon la revendication 12 ou 13, dans lequel l'étape de déconnexion comprend
l'ouverture des commutateurs d'alimentation principale (74a, 74b, 74c) et la fermeture
du commutateur d'alimentation de secours (70), et/ou
dans lequel l'étape de charge comprend : la conversion de l'alimentation en courant
alternatif (c.a.) provenant de la source d'alimentation principale (17) en alimentation
en courant continu (c.c.) ; et
la fourniture de l'alimentation c.c. à la source d'alimentation de secours.
15. Procédé selon la revendication 12, 13 ou 14, comprenant en outre :
la déconnexion de la source d'alimentation principale (17) et de la source d'alimentation
de secours (76) de l'entraînement régénérateur en mode d'économie d'alimentation.
16. Procédé selon l'une quelconque des revendications 12 à 15, comprenant en outre :
la fourniture d'un onduleur (32) pour entraîner le moteur de dispositif de levage
(14) en convertissant l'alimentation c.c. provenant du convertisseur (30) en alimentation
c.a. et, lorsque le moteur de dispositif de levage (14) a une génération en cours,
pour convertir l'alimentation c.a. produite par le moteur de dispositif de levage
(14) en alimentation c.c. ; et
la connexion du bus de puissance (36) entre le convertisseur (30) et l'onduleur (32)
pour recevoir l'alimentation c.c. provenant du convertisseur (30) et de l'onduleur
(32) .